English

Multi-messenger Observations of a Binary Neutron Star Merger

High Energy Astrophysical Phenomena 2017-10-25 v2 General Relativity and Quantum Cosmology

Abstract

On 2017 August 17 a binary neutron star coalescence candidate (later designated GW170817) with merger time 12:41:04 UTC was observed through gravitational waves by the Advanced LIGO and Advanced Virgo detectors. The Fermi Gamma-ray Burst Monitor independently detected a gamma-ray burst (GRB 170817A) with a time delay of \sim1.7 s with respect to the merger time. From the gravitational-wave signal, the source was initially localized to a sky region of 31 deg2^2 at a luminosity distance of 408+840^{+8}_{-8} Mpc and with component masses consistent with neutron stars. The component masses were later measured to be in the range 0.86 to 2.26 Msun. An extensive observing campaign was launched across the electromagnetic spectrum leading to the discovery of a bright optical transient (SSS17a, now with the IAU identification of AT 2017gfo) in NGC 4993 (at \sim40 Mpc) less than 11 hours after the merger by the One-Meter, Two Hemisphere (1M2H) team using the 1 m Swope Telescope. The optical transient was independently detected by multiple teams within an hour. Subsequent observations targeted the object and its environment. Early ultraviolet observations revealed a blue transient that faded within 48 hours. Optical and infrared observations showed a redward evolution over \sim10 days. Following early non-detections, X-ray and radio emission were discovered at the transient's position \sim9 and \sim16 days, respectively, after the merger. Both the X-ray and radio emission likely arise from a physical process that is distinct from the one that generates the UV/optical/near-infrared emission. No ultra-high-energy gamma-rays and no neutrino candidates consistent with the source were found in follow-up searches. (Abridged)

Keywords

Cite

@article{arxiv.1710.05833,
  title  = {Multi-messenger Observations of a Binary Neutron Star Merger},
  author = {LIGO Scientific Collaboration and Virgo Collaboration and Fermi GBM and INTEGRAL and IceCube Collaboration and AstroSat Cadmium Zinc Telluride Imager Team and IPN Collaboration and The Insight-Hxmt Collaboration and ANTARES Collaboration and The Swift Collaboration and AGILE Team and The 1M2H Team and The Dark Energy Camera GW-EM Collaboration and the DES Collaboration and The DLT40 Collaboration and GRAWITA and : and GRAvitational Wave Inaf TeAm and The Fermi Large Area Telescope Collaboration and ATCA and : and Australia Telescope Compact Array and ASKAP and : and Australian SKA Pathfinder and Las Cumbres Observatory Group and OzGrav and DWF and AST3 and CAASTRO Collaborations and The VINROUGE Collaboration and MASTER Collaboration and J-GEM and GROWTH and JAGWAR and Caltech- NRAO and TTU-NRAO and NuSTAR Collaborations and Pan-STARRS and The MAXI Team and TZAC Consortium and KU Collaboration and Nordic Optical Telescope and ePESSTO and GROND and Texas Tech University and SALT Group and TOROS and : and Transient Robotic Observatory of the South Collaboration and The BOOTES Collaboration and MWA and : and Murchison Widefield Array and The CALET Collaboration and IKI-GW Follow-up Collaboration and H. E. S. S. Collaboration and LOFAR Collaboration and LWA and : and Long Wavelength Array and HAWC Collaboration and The Pierre Auger Collaboration and ALMA Collaboration and Euro VLBI Team and Pi of the Sky Collaboration and The Chandra Team at McGill University and DFN and : and Desert Fireball Network and ATLAS and High Time Resolution Universe Survey and RIMAS and RATIR and SKA South Africa/MeerKAT},
  journal= {arXiv preprint arXiv:1710.05833},
  year   = {2017}
}

Comments

This is a reproduction of the article published in the Astrophysical Journal Letters, under the terms of the Creative Commons Attribution 3.0 licence